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I implicitly assign a Boolean to a variable

x=false

I can do this

 $x || echo "the value is set to true"

But the reverse test isn't just that short and sweet

 { ! $x || echo "the value is set to false "  ; } 

in Bourne (Ksh ) it evaluates like

 ! false

and the results are not the same

So one could use a test value for the opp condition ( ! )

[ "$x"  = "true" ]

Is that the only short way to reverse test a boolean or there is a better way to say it

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{ ! $x || echo "the value is set to true"; } works fine in BASH/ksh –  anubhava Feb 26 '14 at 1:57
    
Anubhava. Welcome back and thanks 'again. Well -that i exactly what I used in the past but it did not give predictable results esp with conditions where you are 'anding' it so I changed to true –  user1874594 Feb 26 '14 at 2:08
    
Make x=true and then call above to see if it prints. ! $x || means 2 negatives. –  anubhava Feb 26 '14 at 2:10
    
yes thx. My situation - I am setting flags to false before the case statement and then set them to true inside 'em –  user1874594 Feb 26 '14 at 2:12
    
I will upd my Q in a sec –  user1874594 Feb 26 '14 at 2:17

2 Answers 2

I'm not sure I understand your question. Do you want to print something according to $x is true or false? If so, I think the following should work:

$x && echo "the value is true" || echo "the value is set to false "  ;
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Thx.I want to test the opp of the boolean ` ! $x && echo "msg"` –  user1874594 Feb 26 '14 at 5:23
if ! $x 
 then
    YourThenCode
 else 
    YourElseCode
 fi

sample

$ x=true;if ! $x ; then echo "True if"; else echo "false if" ;fi
false if
$ x=false;if ! $x ; then echo "True if"; else echo "false if" ;fi
True if
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